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Development of Fluorescence-based LIDAR Technology for Biological Sensing

Published online by Cambridge University Press:  01 February 2011

Per Jonsson
Affiliation:
Swedish Defence Research Agency (FOI), Sensor Technology, PO Box 1165, SE-581 11 Linkoping, Sweden
Fredrik Kullander
Affiliation:
Swedish Defence Research Agency (FOI), Sensor Technology, PO Box 1165, SE-581 11 Linkoping, Sweden
Mikael Tiihonen
Affiliation:
Department of Physics, Royal Institute of Technology, SE-106 91 Stockholm, Sweden
Melker Nordstrand
Affiliation:
Swedish Defence Research Agency (FOI), NBC Defence, SE-901 82 Umeå, Sweden
Torbjørn Tjænhage
Affiliation:
Swedish Defence Research Agency (FOI), NBC Defence, SE-901 82 Umeå, Sweden
Pær Wæsterby
Affiliation:
Swedish Defence Research Agency (FOI), NBC Defence, SE-901 82 Umeå, Sweden
Gøran Olofsson
Affiliation:
Swedish Defence Research Agency (FOI), NBC Defence, SE-901 82 Umeå, Sweden
Mikael Lindgren
Affiliation:
Swedish Defence Research Agency (FOI), Sensor Technology, PO Box 1165, SE-581 11 Linkoping, Sweden Department of Physics, Norwegian University of Science and Technology, NO-7491 Trondheim, Norway
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Abstract

ABSTRACT:

Results of our on-going development of biological warfare agents (BWA) detection systems based on spectral detection of ultraviolet (UV) laser induced fluorescence (LIF) are presented. A compact optical parametric oscillator (OPO) with intracavity sum-frequency mixing (SFM) to generate 293 nm UV laser irradiation was developed. The OPO/SFM device was pumped by a diode-pumped Nd:YAG laser (1064 nm), including subsequent second-harmonic generation (SHG) in an external periodically poled KTiOPO4 (PPKTP) crystal. The laser generated 1.8 ns pulses at 100 Hz with an average power of 44 mW at 532 nm. The whole system could be used to deliver approximately 30 μJ laser irradiation per pulse (100 Hz) at 293 nm. The spectral detection part of the system consists of a grating and a photomultiplier tube (PMT) array with 32 channels, which can measure fluorescence spectra in the wavelength band from 250 nm to 800 nm. The detector system was designed along with a trigger laser to enable measurement of fluorescence spectra from an individual aerosol particle of simulants for BWA upon excitation with a single nanosecond laser pulse. We demonstrate the successful detection and spectral characterization of simulants for BWA, i.e., Bacillus atrophaeus (BG), Bacillus thuringiensis (BT), and Ovalbumin (OA).

Type
Research Article
Copyright
Copyright © Materials Research Society 2005

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References

1 Walt, D. R. and Franz, D. R. Analytical Cemistry, pp. 378 A-746 A (2000).Google Scholar
2 Lakowicz, J. R. Principles of Fluorescence Spectroscopy, 2nd ed. (Kluwer Academic/Plenum Publisher, New York, 1999).Google Scholar
3 Hill, S. C. Pinnick, R. G. Niles, S. Pan, Y.-L. Holler, S. Chang, R. K. Bottiger, J. Chen, B. T. Orr, C.-S. and Feather, G. Field Analytical Chemistry & Technology 3 (4-5), pp. 221239 (1999).Google Scholar
4 Tiihonen, M. Pasiskevicius, V. Laurell, F. Jonsson, P. and Lindgren, M. Proceedings of SPIE 5332, pp. 134142 (2004).Google Scholar
5 Tiihonen, M. Pasiskevicius, V. Laurell, F. Hammarström, P., and Lindgren, M. Proceedings of SPIE 5240, p.127136 (2004).Google Scholar
6 Jonsson, P. Kullander, F. Nordstrand, M. Tjärnhage, T., Wästerby, P., and Lindgren, M. Proceedings of SPIE 5617 pp. 6074 (2004).Google Scholar
7 Tjärnhage, T., Strömqvist, M., Olofsson, G. Squirrell, D. Burke, J. Ho, J. and Spence, M. Field Analytical Chemistry & Technology 5 (4), pp. 171176 (2001).Google Scholar
8 Kaye, P. H. Barton, J. E. Hirst, E. and Clark, J. M. Applied Optics 39 (21), pp. 37383745 (2000).Google Scholar
9 Ho, J. Analytica Chimica Acta 457 (1), pp. 125148 (2002).Google Scholar
10 Sivaprakasam, V. Houston, A. L. Scotto, C. and Eversole, J. D. Optics Express 12 (19), pp. 44574466 (2004).Google Scholar
11 Pinnick, R. G. Hill, S. C. Pan, Y.-L. Chang, R. K. Atmospheric Environment 38 (11), pp. 16571672 (2004).Google Scholar
12 Tiihonen, M. Pasiskevicius, V. and Laurell, F. Tailored UV-laser source for fluorescence spectroscopy of biomolecules, accepted for publication in Special issue of Optics and Lasers in Engineering (2005).Google Scholar
13 Pasiskevicius, V. Karlsson, H. Laurell, F. Butkus, R. Smilgevicius, V. and Piskarskas, A. Optics Letters 26 (10), pp. 710712 (2001).Google Scholar
14 Armstrong, D. J. Smith, A. V. Proceedings of SPIE 4893, pp. 105120 (2002).Google Scholar
15 Simard, J. R. Roy, G. Mathieu, P. Larochelle, V. McFee, J. and Ho., J. IEEE Transactions on Geoscience and Remote Sensing 42 (4), 865874, (2004).Google Scholar
16 Measures, R. M. Laser Remote Sensing: Fundamentals and Applications, (New York, John Wiley & Sons, 1984).Google Scholar